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蝇和蟹神经基质对光流的匹配功能:小脑中板介导光运动反应。

Matched function of the neuropil processing optic flow in flies and crabs: the lobula plate mediates optomotor responses in .

机构信息

Instituto de Fisiología, Biología Molecular y Neurociencias (IFIBYNE) CONICET-Universidad de Buenos Aires, Universidad de Buenos Aires, Pabellón II, Ciudad Universitaria, 1428 Buenos Aires, Argentina.

Departamento de Fisiología, Biología Molecular y Celular Dr. Héctor Maldonado, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires, Pabellón II, Ciudad Universitaria, 1428 Buenos Aires, Argentina.

出版信息

Proc Biol Sci. 2022 Aug 31;289(1981):20220812. doi: 10.1098/rspb.2022.0812. Epub 2022 Aug 17.

Abstract

When an animal rotates (whether it is an arthropod, a fish, a bird or a human) a drift of the visual panorama occurs over its retina, termed optic flow. The image is stabilized by compensatory behaviours (driven by the movement of the eyes, head or the whole body depending on the animal) collectively termed optomotor responses. The dipteran lobula plate has been consistently linked with optic flow processing and the control of optomotor responses. Crabs have a neuropil similarly located and interconnected in the optic lobes, therefore referred to as a lobula plate too. Here we show that the crabs' lobula plate is required for normal optomotor responses since the response was lost or severely impaired in animals whose lobula plate had been lesioned. The effect was behaviour-specific, since avoidance responses to approaching visual stimuli were not affected. Crabs require simpler optic flow processing than flies (because they move slower and in two-dimensional instead of three-dimensional space), consequently their lobula plates are relatively smaller. Nonetheless, they perform the same essential role in the visual control of behaviour. Our findings add a fundamental piece to the current debate on the evolutionary relationship between the lobula plates of insects and crustaceans.

摘要

当动物(无论是节肢动物、鱼类、鸟类还是人类)旋转时,视网膜上会出现视觉全景的漂移,称为光流。这种图像通过补偿行为(由眼睛、头部或整个身体的运动驱动,具体取决于动物)得到稳定,这些补偿行为统称为光运动反应。双翅目小眼板一直与光流处理和光运动反应的控制有关。螃蟹的神经节同样位于视叶中,并相互连接,因此也被称为小眼板。在这里,我们表明螃蟹的小眼板对于正常的光运动反应是必需的,因为小眼板受损的动物的光运动反应丧失或严重受损。这种影响是特定于行为的,因为对接近的视觉刺激的回避反应不受影响。螃蟹需要比苍蝇更简单的光流处理(因为它们移动得更慢,并且在二维而不是三维空间中移动),因此它们的小眼板相对较小。尽管如此,它们在视觉控制行为方面发挥着相同的基本作用。我们的发现为当前关于昆虫和甲壳类动物小眼板之间的进化关系的争论增添了一个基本的内容。

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本文引用的文献

1
Mechanisms of punctuated vision in fly flight.果蝇飞行中视觉间断的机制。
Curr Biol. 2021 Sep 27;31(18):4009-4024.e3. doi: 10.1016/j.cub.2021.06.080. Epub 2021 Jul 29.
3
The lobula plate is exclusive to insects.小叶板是昆虫所特有的。
Arthropod Struct Dev. 2021 Mar;61:101031. doi: 10.1016/j.asd.2021.101031. Epub 2021 Mar 9.
6
How fly neurons compute the direction of visual motion.果蝇神经元如何计算视觉运动方向。
J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2020 Mar;206(2):109-124. doi: 10.1007/s00359-019-01375-9. Epub 2019 Nov 5.
7
Unidirectional Optomotor Responses and Eye Dominance in Two Species of Crabs.两种螃蟹的单向视动反应和眼优势
Front Physiol. 2019 May 16;10:586. doi: 10.3389/fphys.2019.00586. eCollection 2019.

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